Correlation strength, orbital-selective incoherence, and local moments formation in the magnetic MAX-phase Mn$_2$GaC
H. J. M. J\"onsson, M. Ekholm, I. Leonov, M. Dahlqvist, J. Rosen, I., A. Abrikosov

TL;DR
This study uses advanced theoretical methods to analyze the electronic and magnetic properties of Mn$_2$GaC, revealing complex magnetic behavior, orbital-selective incoherence, and the importance of Hund's exchange in local moment formation.
Contribution
It provides a detailed theoretical analysis of Mn$_2$GaC's magnetic interactions, highlighting the role of orbital-dependent localization and the applicability of DFT+DMFT and disordered local moment approaches.
Findings
Near degeneracy of ferro- and antiferromagnetic states
Orbital-selective incoherence of Mn 3d states
Magnetic moments driven by Hund's exchange, not Coulomb interaction
Abstract
We perform a theoretical study of the electronic structure and magnetic properties of the prototypical magnetic MAX-phase MnGaC with the main focus given to the origin of magnetic interactions in this system. Using the density functional theory+dynamical mean-field theory (DFT+DMFT) method we explore the effects of electron-electron interactions and magnetic correlations on the electronic properties, magnetic state, and spectral weight coherence of paramagnetic and magnetically-ordered phases of MnGaC. We also benchmark the DFT-based disordered local moment approach for this system by comparing the obtained electronic and magnetic properties with that of the DFT+DMFT method. Our results reveal a complex magnetic behavior characterized by a near degeneracy of the ferro- and antiferromagnetic configurations of MnGaC, implying a high sensitivity of its magnetic state to fine…
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